US10404397B2

Wavelength division multiplexed telecommunication system with automatic compensation of chromatic dispersion

Summary by NHIP

WDM system with automatic dispersion compensation

The system compensates chromatic dispersion in a WDM link using amplitude modulated probe signals with a variable wavelength spacing. A tunable dispersion compensation module executes an algorithm to equalize the relative phase difference between transmitter and receiver until it matches the initial predetermined value.

Claim Score by NHIP

Read claim 26, the broadest

Abstract

A wavelength division multiplexed telecommunication system with automatic compensation of chromatic dispersion in a predetermined wavelength band, said WDM telecommunication system comprising a probe signal detection unit at a receiver side adapted to detect amplitude modulated probe signals generated by a probe signal generation unit at a transmitter side with a predetermined relative phase difference and transmitted through an optical link to said receiver side; and a chromatic dispersion compensation unit adapted to compensate the chromatic dispersion in response to a relative phase difference of the amplitude modulated probe signals detected by said probe signal detection unit at the receiver side.

US10404397B2, drawing sheet 1
Sheet 1 of 9

Term

9.2 yearsleft in the term

Expires 23 December 2035.

  1. Priority and filed
  2. Granted
  3. Today
  4. Expires

29 claims: 4 independent, 25 dependent

  1. 1
    A wavelength division multiplexed (WDM) telecommunication system with automatic compensation of chromatic dispersion in a predetermined wavelength band, said WDM telecommunication system comprising:a) a probe signal detection unit at a receiver side adapted to detect amplitude modulated probe signals having respective probe signal wavelengths generated by a probe signal generation unit at a transmitter side with a predetermined relative phase difference based on a switchable modulation frequency before being transmitted through an optical link to said receiver side, wherein a wavelength spacing between the probe signal wavelengths is variable;and b) a chromatic dispersion compensation unit, comprising a tunable dispersion compensation module comprising an algorithm, wherein said tunable dispersion compensation module is adapted to execute said algorithm to completely compensate the chromatic dispersion in response to a relative phase difference of the amplitude modulated probe signals detected by said probe signal detection unit at the receiver side until the relative phase difference at the receiver side equals that at the transmitter side;c) wherein said probe signal generation unit is adapted to generate probe signals with equal modulation frequency and with the predetermined relative phase difference;and d) wherein the algorithm, in order to make the relative phase difference at the receiver side equal that at the transmitter side, carries out the following steps S 61 -S 66 : in a first step S 61 : a first laser diode provides a first amplitude modulated probe signal, AMPS 1 , at a fixed reference wavelength λ ref ;in a further step S 62 , the wavelength of the other amplitude modulated probe signal, AMPS 2 , generated by a second laser diode of the probe signal generation unit is tuned to a wavelength λ x ;in a further step S 63 , the phase difference Δϕ x between the received amplitude modulated probe signals AMPS 1 , AMPS 2 is calculated at the receiver side;in a further step S 64 , the second laser diode providing the second probe signal is tuned to another wavelength λ y ;then, in a further step S 65 , the phase difference Δϕ y between the probe signal at the reference wavelength λ ref and the probe signal at the tuned wavelength λ y is calculated;and in step S 66 , the tunable dispersion compensation module is tuned until the phase difference Δϕ x is equal to the calculated phase difference Δϕ y ;wherein steps S 61 and S 64 are iterated to improve the accuracy of the chromatic dispersion compensation.
  2. 20
    A method for compensating a chromatic dispersion in a predetermined wavelength band, the method comprising the steps of:(a) generating amplitude modulated probe signals having respective probe signal wavelengths with a predetermined relative phase difference at a transmitter side based on a switchable modulation frequency and transmitting the generated amplitude modulated probe signals through an optical link to a receiver side, wherein a wavelength spacing between the probe signal wavelengths is variable;(b) detecting at the receiver side a relative phase difference of the received amplitude modulated probe signals;and (c) controlling via an algorithm a tunable compensation module and completely compensating automatically the chromatic dispersion in response to the detected relative phase difference of the received amplitude modulated probe signals until the relative phase difference at the receiver side equals that at the transmitter side;(d) wherein the amplitude modulated probe signals are generated by laser diodes having equal modulation frequency and comprise the predetermined relative phase difference;(e) wherein said probe signal generation unit is adapted to generate probe signals with equal modulation frequency and with the predetermined relative phase difference;and (f) wherein the algorithm, in order to make the relative phase difference at the receiver side equal that at the transmitter side, carries out the following steps S 61 -S 66 ;in a first step S 61 : a first laser diode provides a first amplitude modulated probe signal, AMPS 1 , at a fixed reference wavelength λ ref ;in a further step S 62 , the wavelength of the other amplitude modulated probe signal, AMPS 2 ;generated by a second laser diode of the probe signal generation unit is tuned to a wavelength λ x ;in a further step S 63 , the phase difference Δϕ x between the received amplitude modulated probe signals AMPS 1 , AMPS 2 is calculated at the receiver side;in a further step S 64 , the second laser diode providing the second probe signal is tuned to another wavelength λ y ;then, in a further step S 65 , the phase difference Δϕ y between the probe signal at the reference wavelength λ ref and the probe signal at the tuned wavelength λ y is calculated;and in step S 66 , the tunable dispersion compensation module is tuned until the phase difference Δϕ x is equal to the calculated phase difference Δϕ y ;wherein steps S 61 and S 64 are iterated to improve the accuracy of the chromatic dispersion compensation.
  3. 26
    Broadest claimClaim Score 16, narrow(NHIP)A line amplifier for amplifying signals received via an optical link, said line amplifier comprising:a probe signal detection unit adapted to detect amplitude modulated probe signals having respective probe signal wavelengths generated by a probe signal generation unit at a transmitter side with a predetermined relative phase difference based on a switchable same modulation frequency and received through said optical link, wherein a wavelength spacing between the probe signal wavelengths is variable;and a chromatic dispersion compensation unit, comprising a tunable dispersion compensation module comprising an algorithm, wherein said tunable dispersion compensation module is adapted to execute said algorithm to completely compensate for a chromatic dispersion in response to a detected relative phase difference of the received amplitude modulated probe signals until the relative phase difference at the receiver side equals that at the transmitter side: and wherein the algorithm, in order to make the relative phase difference at the receiver side equal that at the transmitter side, carries out the following steps S 61 -S 66 : in a first step S 61 : a first laser diode provides a first amplitude modulated probe signal, AMPS 1 , at a fixed reference wavelength λ ref ;in a further step S 62 , the wavelength of the other amplitude modulated probe signal, AMPS 2 , generated by a second laser diode of the probe signal generation unit is tuned to a wavelength λ x ;in a further step S 63 , the phase difference Δϕ x between the received amplitude modulated probe signals AMPS 1 , AMPS 2 is calculated at the receiver side;in a further step S 64 , the second laser diode providing the second probe signal is tuned to another wavelength λ y : then, in a further step S 65 , the phase difference Δϕ y between the probe signal at the reference wavelength λ ref and the probe signal at the tuned wavelength λ y is calculated;and in step S 66 , the tunable dispersion compensation module is tuned until the phase difference Δϕ x is equal to the calculated phase difference Δϕ y ;wherein steps S 61 and S 64 are iterated to improve the accuracy of the chromatic dispersion compensation.
  4. 27
    A transceiver card for a bidirectional optical transmission link of a wavelength division multiplexed (WDM) telecommunication system, said transceiver card comprising:a probe signal generation unit adapted to generate at least two amplitude modulated probe signals having respective probe signal wavelengths with a predetermined relative phase difference added to wavelength division multiplexed, WDM, signals transmitted through said optical transmission link based on a switchable same modulation frequency, wherein a wavelength spacing between the probe signal wavelengths is variable, a probe signal detection unit adapted to detect amplitude modulated probe signals received through said optical transmission link, and a chromatic dispersion compensation unit, comprising a tunable dispersion compensation module comprising an algorithm, wherein said tunable dispersion compensation module is adapted to execute said algorithm to completely compensate for a chromatic dispersion in response to a detected relative phase difference of the received amplitude modulated probe signals until the relative phase difference at the receiver side equals that at the transmitter side;and wherein the algorithm, in order to make the relative phase difference at the receiver side equal that at the transmitter side, carries out the following steps S 61 -S 66 ;in a first step S 61 : a first laser diode provides a first amplitude modulated probe signal, AMPS 1 , at a fixed reference wavelength λ ref ;in a further step S 62 , the wavelength of the other amplitude modulated probe signal, AMPS 2 , generated by a second laser diode of the probe signal generation unit is tuned to a wavelength λ x ;in a further step S 63 , the phase difference Δϕ x between the received amplitude modulated probe signals AMPS 1 , AMPS 2 is calculated at the receiver side;in a further step S 64 , the second laser diode providing the second probe signal is tuned to another wavelength λ y ;then, in a further step S 65 , the phase difference Δϕ y between the probe signal at the reference wavelength λ ref and the probe signal at the tuned wavelength λ y is calculated: and in step S 66 , the tunable dispersion compensation module is tuned until the phase difference Δϕ x is equal to the calculated phase difference Δϕ y ;wherein steps S 61 and S 64 are iterated to improve the accuracy of the chromatic dispersion compensation.